Department of Brain Sciences, Daegu Gyeongbuk Institute of Science and Technology (DGIST), Daegu, 42988, Korea.
Center for Synapse Diversity and Specificity, DGIST, Daegu, 42988, Korea.
Nat Commun. 2024 Feb 22;15(1):1624. doi: 10.1038/s41467-024-45695-0.
LAR-RPTPs are evolutionarily conserved presynaptic cell-adhesion molecules that orchestrate multifarious synaptic adhesion pathways. Extensive alternative splicing of LAR-RPTP mRNAs may produce innumerable LAR-RPTP isoforms that act as regulatory "codes" for determining the identity and strength of specific synapse signaling. However, no direct evidence for this hypothesis exists. Here, using targeted RNA sequencing, we detected LAR-RPTP mRNAs in diverse cell types across adult male mouse brain areas. We found pronounced cell-type-specific patterns of two microexons, meA and meB, in Ptprd mRNAs. Moreover, diverse neural circuits targeting the same neuronal populations were dictated by the expression of different Ptprd variants with distinct inclusion patterns of microexons. Furthermore, conditional ablation of Ptprd meA variants at presynaptic loci of distinct hippocampal circuits impaired distinct modes of synaptic transmission and objection-location memory. Activity-triggered alterations of the presynaptic Ptprd meA code in subicular neurons mediates NMDA receptor-mediated postsynaptic responses in CA1 neurons and objection-location memory. Our data provide the evidence of cell-type- and/or circuit-specific expression patterns in vivo and physiological functions of LAR-RPTP microexons that are dynamically regulated.
LAR-RPTPs 是进化上保守的突触前细胞粘附分子,它们协调多种突触粘附途径。LAR-RPTP mRNAs 的广泛选择性剪接可能产生无数的 LAR-RPTP 异构体,作为确定特定突触信号的身份和强度的调节“代码”。然而,目前还没有直接证据支持这一假设。在这里,我们使用靶向 RNA 测序,在成年雄性小鼠大脑区域的多种细胞类型中检测到 LAR-RPTP mRNAs。我们发现 Ptprd mRNAs 中的两个微外显子 meA 和 meB 表现出明显的细胞类型特异性模式。此外,针对同一神经元群体的不同神经回路由不同 Ptprd 变体的表达决定,这些变体具有不同的微外显子包含模式。此外,在不同的海马回路的突触前部位特异性缺失 Ptprd meA 变体,会损害不同的突触传递模式和物体位置记忆。在海马神经元中,活动触发的突触前 Ptprd meA 代码的改变介导了 CA1 神经元中的 NMDA 受体介导的突触后反应和物体位置记忆。我们的数据提供了体内细胞类型和/或回路特异性表达模式以及动态调节的 LAR-RPTP 微外显子的生理功能的证据。